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首页> 外文期刊>Computational Materials Science >Atomistic simulation study of atomic size effects on B1 (NaCl), B2 (CsCl), and B3 (zinc-blende) crystal stability of binary ionic compounds
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Atomistic simulation study of atomic size effects on B1 (NaCl), B2 (CsCl), and B3 (zinc-blende) crystal stability of binary ionic compounds

机译:原子尺寸对二元离子化合物的B1(NaCl),B2(CsCl)和B3(锌共混物)晶体稳定性影响的原子模拟研究

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摘要

Ionic compounds exhibit a variety of crystal structures that can critically affect their applications. Traditionally, relative sizes of cations and anions have been used to explain coordination of ions within the crystals. Such approaches assume atoms to be hard spheres and they cannot explain the observed structures of some crystals. Here we develop an atomistic method and use it to explore the structure-determining factors beyond the limitations of the hard sphere approach. Our approach is based upon a calibrated interatomic potential database that uses independent intrinsic bond lengths to measure atomic sizes. By carrying out extensive atomistic simulations, striking relationships among intrinsic bond lengths are discovered to determine the B1 (NaCl), B2 (CsCl), and B3 (zinc-blende) structure of binary ionic compounds.
机译:离子化合物具有多种晶体结构,这些晶体结构可能会严重影响其应用。传统上,阳离子和阴离子的相对大小已用于解释晶体中离子的配位。这种方法假设原子是硬球,它们不能解释观察到的某些晶体结构。在这里,我们开发了一种原子方法,并用它来探索硬球方法所没有的结构决定因素。我们的方法基于经过校准的原子间电势数据库,该数据库使用独立的本征键长来测量原子尺寸。通过进行广泛的原子模拟,发现内在键长之间的显着关系可以确定二元离子化合物的B1(NaCl),B2(CsCl)和B3(锌-混合)结构。

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